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Published on: May 11, 2015
Genetic basis of pulmonary arterial hypertension: current understanding and future directions
John H Newman1, Richard C Trembath, Jane A Morse
1Vanderbilt University School of Medicine, Nashville, Tennessee, United Kingdom. John.Newman@med.va.gov
Abstract:
Mutations in two receptors of the transforming growth factor-beta family have recently been shown to be present in the majority of cases of inherited (familial) pulmonary arterial hypertension (PAH). Study of the biology of these receptors, bone morphogenetic protein receptor type-2 (BMPR2), and activin-like kinase type-1 (ALK-1) will certainly reveal pathogenic mechanisms of disease. Exonic mutations in BMPR2 are found in about 50% of patients with familial PAH, and ALK1 mutations are found in a minority of patients with hereditary hemorrhagic telangiectasia and co-existent PAH. Because familial PAH is highly linked to chromosome 2q33, it is likely that the remaining 50% of family cases without exonic mutations have either intronic BMPR2 abnormalities or alterations in the promoter or regulatory genes. Also, only about 10% of patients with "sporadic" idiopathic PAH have identifiable BMPR2 mutations. Mutations in BMPR2 confer a 15% to 20% chance of developing PAH in a carrier's lifetime. Thus, there must be gene-gene or gene-environment interactions that either enhance or prevent the development of the vascular disease in persons carrying a mutation, and there must be other patterns of susceptibility based on genetic makeup. To elucidate the genetic basis of PAH further, investigations are needed, including genome scanning for major and minor genes, analysis of genetic profiles of patients for candidate genes likely to modify risk for disease (e.g., serotonin transporter alleles, nitric oxide-synthases), proteomics, transgenic mice, and altered signal transduction. Advances in genetic testing, presymptomatic screening, and biomarkers should permit early detection of disease in those at risk of PAH and allow trials of preventive therapy in carriers.
Insights
Mutations in BMPR2 and ALK1 receptors are linked to inherited pulmonary arterial hypertension (PAH). Further genetic research is needed to understand disease mechanisms and develop early detection and preventive therapies for PAH.
Area of Science:
- Genetics
- Molecular Biology
- Cardiovascular Research
Background:
- Inherited pulmonary arterial hypertension (PAH) is strongly associated with mutations in transforming growth factor-beta superfamily receptors.
- Bone morphogenetic protein receptor type-2 (BMPR2) mutations are found in ~50% of familial PAH cases, while activin-like kinase type-1 (ALK-1) mutations are linked to hereditary hemorrhagic telangiectasia with PAH.
Purpose of the Study:
- To investigate the genetic basis of pulmonary arterial hypertension (PAH).
- To identify pathogenic mechanisms underlying inherited and sporadic PAH.
- To explore genetic factors influencing disease susceptibility and progression.
Main Methods:
- Analysis of exonic and potential intronic/regulatory mutations in BMPR2.
- Genetic profiling of patients for candidate risk-modifying genes (e.g., serotonin transporter, nitric oxide synthases).
- Genome scanning, proteomics, and transgenic mouse models to elucidate PAH pathogenesis.
Main Results:
- BMPR2 mutations are identified in a significant portion of familial PAH cases and a smaller fraction of sporadic PAH.
- BMPR2 mutation carriers have a 15-20% lifetime risk of developing PAH, suggesting gene-gene/environment interactions.
Conclusions:
- Understanding BMPR2 and ALK-1 biology is crucial for PAH pathogenesis.
- Further genetic investigations are essential to uncover the full genetic architecture of PAH.
- Advances in genetic testing and biomarkers promise early detection and preventive strategies for individuals at risk of PAH.
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